SRP-PHAR Combined Velocity Scanning for Locating the Shallow Underground Acoustic Source

Shallow underground acoustic source localization is a component of near-field source localization, which is involved in numerous application fields. The positioning accuracy is mainly limited by the accuracy of time of arrival (TOA)/time difference of arrival (TDOA) extraction and velocity extractio...

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Main Authors: Pengfei Nie, Bin Liu, Ping Chen, Kun Li, Yan Han
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8866715/
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spelling doaj-0ce98ff142ce455aa776c3c53c15b4aa2021-03-30T00:37:28ZengIEEEIEEE Access2169-35362019-01-01716135016136210.1109/ACCESS.2019.29470978866715SRP-PHAR Combined Velocity Scanning for Locating the Shallow Underground Acoustic SourcePengfei Nie0https://orcid.org/0000-0002-9200-9357Bin Liu1https://orcid.org/0000-0001-8800-7239Ping Chen2Kun Li3Yan Han4Shanxi Key Laboratory of Information Survey and Processing, North University of China, Taiyuan, ChinaShanxi Key Laboratory of Information Survey and Processing, North University of China, Taiyuan, ChinaShanxi Key Laboratory of Information Survey and Processing, North University of China, Taiyuan, ChinaSchool of Information and Communication Engineering, North University of China, Taiyuan, ChinaShanxi Key Laboratory of Information Survey and Processing, North University of China, Taiyuan, ChinaShallow underground acoustic source localization is a component of near-field source localization, which is involved in numerous application fields. The positioning accuracy is mainly limited by the accuracy of time of arrival (TOA)/time difference of arrival (TDOA) extraction and velocity extraction from noisy data. The steered response power with phase transform (SRP-PHAT) is one of the most robustness and high-precision acoustic source localization approaches, which avoids extracting the TDOA in advance. But SRP-PHAT is constrained for only using under known velocity. Furthermore, it is barely possible for shallow underground sound source localization to easily obtain high-quality velocity models. This paper proposes an improved SRP-PHAT with unknown velocity (SRP-PHAT-UNVEL), which avoids extracting the TDOA and velocity in advance. SRP-PHAT-UNVEL matches the calculated time delay curve with the actual time delay curve by scanning of the candidate spatial position and the candidate velocity simultaneously, so as to maximize the output energy to fulfill the positioning. However, SRP-PHAT-UNVEL has larger computational complexity as it proceeds with the optimization of space and velocity. Since the spatial position and velocity affect the shape and the curvature of the calculated delay curve respectively, these are two relatively independent processes. Therefore, the simultaneous optimization of space and velocity can be replaced by a two-stage optimization to improve the efficiency and accuracy of SRP-PHAT-UNVEL. Spatial optimization is equivalent to the optimization of SRP-PHAT, and the spatial optimization of the bat algorithm has faster convergence rate and higher location precision than traditional methods. Velocity optimization can be achieved by the common linear search technique since the function of velocity and energy is an ideal convex function. Simulation experiment results show that the proposed method is insensitive to noise, which can achieve high accuracy of the acoustic source position and velocity simultaneously. With grouping the measured data, the proposed method can further improve the robustness and accuracy by fusing the grouping location results with principal component analysis.https://ieeexplore.ieee.org/document/8866715/Shallow underground acoustic source locationsteered response power with phase transformbat algorithmprincipal component analysis
collection DOAJ
language English
format Article
sources DOAJ
author Pengfei Nie
Bin Liu
Ping Chen
Kun Li
Yan Han
spellingShingle Pengfei Nie
Bin Liu
Ping Chen
Kun Li
Yan Han
SRP-PHAR Combined Velocity Scanning for Locating the Shallow Underground Acoustic Source
IEEE Access
Shallow underground acoustic source location
steered response power with phase transform
bat algorithm
principal component analysis
author_facet Pengfei Nie
Bin Liu
Ping Chen
Kun Li
Yan Han
author_sort Pengfei Nie
title SRP-PHAR Combined Velocity Scanning for Locating the Shallow Underground Acoustic Source
title_short SRP-PHAR Combined Velocity Scanning for Locating the Shallow Underground Acoustic Source
title_full SRP-PHAR Combined Velocity Scanning for Locating the Shallow Underground Acoustic Source
title_fullStr SRP-PHAR Combined Velocity Scanning for Locating the Shallow Underground Acoustic Source
title_full_unstemmed SRP-PHAR Combined Velocity Scanning for Locating the Shallow Underground Acoustic Source
title_sort srp-phar combined velocity scanning for locating the shallow underground acoustic source
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2019-01-01
description Shallow underground acoustic source localization is a component of near-field source localization, which is involved in numerous application fields. The positioning accuracy is mainly limited by the accuracy of time of arrival (TOA)/time difference of arrival (TDOA) extraction and velocity extraction from noisy data. The steered response power with phase transform (SRP-PHAT) is one of the most robustness and high-precision acoustic source localization approaches, which avoids extracting the TDOA in advance. But SRP-PHAT is constrained for only using under known velocity. Furthermore, it is barely possible for shallow underground sound source localization to easily obtain high-quality velocity models. This paper proposes an improved SRP-PHAT with unknown velocity (SRP-PHAT-UNVEL), which avoids extracting the TDOA and velocity in advance. SRP-PHAT-UNVEL matches the calculated time delay curve with the actual time delay curve by scanning of the candidate spatial position and the candidate velocity simultaneously, so as to maximize the output energy to fulfill the positioning. However, SRP-PHAT-UNVEL has larger computational complexity as it proceeds with the optimization of space and velocity. Since the spatial position and velocity affect the shape and the curvature of the calculated delay curve respectively, these are two relatively independent processes. Therefore, the simultaneous optimization of space and velocity can be replaced by a two-stage optimization to improve the efficiency and accuracy of SRP-PHAT-UNVEL. Spatial optimization is equivalent to the optimization of SRP-PHAT, and the spatial optimization of the bat algorithm has faster convergence rate and higher location precision than traditional methods. Velocity optimization can be achieved by the common linear search technique since the function of velocity and energy is an ideal convex function. Simulation experiment results show that the proposed method is insensitive to noise, which can achieve high accuracy of the acoustic source position and velocity simultaneously. With grouping the measured data, the proposed method can further improve the robustness and accuracy by fusing the grouping location results with principal component analysis.
topic Shallow underground acoustic source location
steered response power with phase transform
bat algorithm
principal component analysis
url https://ieeexplore.ieee.org/document/8866715/
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